Tracing the first hematopoietic stem cell generation in human embryo by single-cell RNA sequencing

生物 干细胞 诱导多能干细胞 细胞生物学 祖细胞 造血 人口 内皮干细胞 胚胎干细胞 遗传学 基因 社会学 人口学 体外
作者
Yang Zeng,Jian He,Zhijie Bai,Zongcheng Li,Yandong Gong,Chen Liu,Yanli Ni,Junjie Du,Chunyu Ma,Lihong Bian,Yu Lan,Bing Liu
出处
期刊:Cell Research [Springer Nature]
卷期号:29 (11): 881-894 被引量:200
标识
DOI:10.1038/s41422-019-0228-6
摘要

Abstract Tracing the emergence of the first hematopoietic stem cells (HSCs) in human embryos, particularly the scarce and transient precursors thereof, is so far challenging, largely due to the technical limitations and the material rarity. Here, using single-cell RNA sequencing, we constructed the first genome-scale gene expression landscape covering the entire course of endothelial-to-HSC transition during human embryogenesis. The transcriptomically defined HSC-primed hemogenic endothelial cells (HECs) were captured at Carnegie stage (CS) 12–14 in an unbiased way, showing an unambiguous feature of arterial endothelial cells (ECs) with the up-regulation of RUNX1 , MYB and ANGPT1 . Importantly, subcategorizing CD34 + CD45 − ECs into a CD44 + population strikingly enriched HECs by over 10-fold. We further mapped the developmental path from arterial ECs via HSC-primed HECs to hematopoietic stem progenitor cells, and revealed a distinct expression pattern of genes that were transiently over-represented upon the hemogenic fate choice of arterial ECs, including EMCN , PROCR and RUNX1T1 . We also uncovered another temporally and molecularly distinct intra-embryonic HEC population, which was detected mainly at earlier CS 10 and lacked the arterial feature. Finally, we revealed the cellular components of the putative aortic niche and potential cellular interactions acting on the HSC-primed HECs. The cellular and molecular programs that underlie the generation of the first HSCs from HECs in human embryos, together with the ability to distinguish the HSC-primed HECs from others, will shed light on the strategies for the production of clinically useful HSCs from pluripotent stem cells.
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